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ARDENED ENCLOSURE DESIGN FOR HIGH PRESSURE EXTREME TEMPERATURE PNEUMATIC SEAL TEST FIXTURE

机译:高压极端温度气动密封测试夹具的加固外壳设计

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This paper discusses the design of a hardened enclosure for high pressure extreme temperature (HPET) pneumatic testing of seals. The seal test fixture is located within a blast-fragment barrier (BFB) in case of a failure of the test fixture. The BFB is located within a hardened test room since the BFB has a 1-in annulus air gap to allow for cabling access to the test fixture, through which shock and gas pressure can propagate out into the room. A 30.5in~3 (0.51) volume charged with 15,000psi (1034bar) of compressed nitrogen under a temperature range of -50°F to 400°F was used to produce the worst-case energy release in the event of a catastrophic failure of the seal fixture. In order to assess the structural capacities of the BFB and test room, an equivalent axisymmetric computational fluid dynamics (CFD) model of the test fixture, BFB, and test room was used to estimate the fragment velocity and applied blast load time histories to the BFB and test room. The BFB was assessed using non-linear dynamic finite element analysis. All of the materials are modeled using a plasticity-based piecewise linear hardening constitutive model, with rate dependency and softening, fit to each material yield, tensile, and elongation limit. The seal fixture generated fragment interactions with the interior surfaces of the BFB model using slideline and pinball contact algorithms.
机译:本文讨论了用于密封件的高压极端温度(HPET)气动测试的硬化外壳的设计。如果测试夹具发生故障,则密封测试夹具位于爆炸碎片屏障(BFB)内。 BFB位于硬化的测试室内,因为BFB具有1英寸的环形气隙,以允许电缆连接到测试夹具,通过它,冲击波和气压可以传播到测试室内。在-50°F至400°F的温度范围内,充有15,000psi(1034bar)压缩氮气的30.5in〜3(0.51)体积用于在发生灾难性故障时产生最坏的能量释放密封装置。为了评估BFB和测试室的结构能力,使用了测试夹具,BFB和测试室的等效轴对称计算流体动力学(CFD)模型来估计碎片速度,并将爆炸载荷时间历史应用于BFB和测试室。使用非线性动态有限元分析评估了BFB。所有材料均使用基于塑性的分段线性硬化本构模型进行建模,该模型具有速率依赖性和软化性,适合每种材料的屈服,拉伸和延伸极限。密封装置使用滑线和弹珠接触算法生成了与BFB模型内表面的碎片相互作用。

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